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1.
Proc Natl Acad Sci U S A ; 121(24): e2400378121, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38830096

ABSTRACT

Epitranscriptomic RNA modifications have emerged as important regulators of the fate and function of viral RNAs. One prominent modification, the cytidine methylation 5-methylcytidine (m5C), is found on the RNA of HIV-1, where m5C enhances the translation of HIV-1 RNA. However, whether m5C functionally enhances the RNA of other pathogenic viruses remains elusive. Here, we surveyed a panel of commonly found RNA modifications on the RNA of hepatitis B virus (HBV) and found that HBV RNA is enriched with m5C as well as ten other modifications, at stoichiometries much higher than host messenger RNA (mRNA). Intriguingly, m5C is mostly found on the epsilon hairpin, an RNA element required for viral RNA encapsidation and reverse transcription, with these m5C mainly deposited by the cellular methyltransferase NSUN2. Loss of m5C from HBV RNA due to NSUN2 depletion resulted in a partial decrease in viral core protein (HBc) production, accompanied by a near-complete loss of the reverse transcribed viral DNA. Similarly, mutations introduced to remove the methylated cytidines resulted in a loss of HBc production and reverse transcription. Furthermore, pharmacological disruption of m5C deposition led to a significant decrease in HBV replication. Thus, our data indicate m5C methylations as a critical mediator of the epsilon elements' function in HBV virion production and reverse transcription, suggesting the therapeutic potential of targeting the m5C methyltransfer process on HBV epsilon as an antiviral strategy.


Subject(s)
Cytidine , Hepatitis B virus , RNA, Viral , Reverse Transcription , Hepatitis B virus/genetics , Hepatitis B virus/metabolism , Hepatitis B virus/physiology , RNA, Viral/genetics , RNA, Viral/metabolism , Cytidine/analogs & derivatives , Cytidine/metabolism , Cytidine/genetics , Humans , Reverse Transcription/genetics , Methylation , Virus Replication/genetics , Epigenesis, Genetic , Virion/metabolism , Virion/genetics , Transcriptome
2.
Viruses ; 16(5)2024 05 14.
Article in English | MEDLINE | ID: mdl-38793659

ABSTRACT

Respiratory syncytial virus (RSV) is the most prevalent cause of acute lower respiratory infection in young children. Currently, the first RSV vaccines are approved by the FDA. Recently, N6-methyladenosine (m6A) RNA methylation has been implicated in the regulation of the viral life cycle and replication of many viruses, including RSV. m6A methylation of RSV RNA has been demonstrated to promote replication and prevent anti-viral immune responses by the host. Whether m6A is also involved in viral entry and whether m6A can also affect RSV infection via different mechanisms than methylation of viral RNA is poorly understood. Here, we identify m6A reader YTH domain-containing protein 1 (YTHDC1) as a novel negative regulator of RSV infection. We demonstrate that YTHDC1 abrogates RSV infection by reducing the expression of RSV entry receptor CX3C motif chemokine receptor 1 (CX3CR1) on the cell surface of lung epithelial cells. Altogether, these data reveal a novel role for m6A methylation and YTHDC1 in the viral entry of RSV. These findings may contribute to the development of novel treatment options to control RSV infection.


Subject(s)
Adenosine , CX3C Chemokine Receptor 1 , Respiratory Syncytial Virus Infections , Respiratory Syncytial Virus, Human , Virus Internalization , Humans , Respiratory Syncytial Virus Infections/virology , Respiratory Syncytial Virus Infections/metabolism , Respiratory Syncytial Virus, Human/genetics , Respiratory Syncytial Virus, Human/physiology , Adenosine/analogs & derivatives , Adenosine/metabolism , CX3C Chemokine Receptor 1/metabolism , CX3C Chemokine Receptor 1/genetics , Virus Replication , Methylation , Down-Regulation , RNA Splicing Factors/metabolism , RNA Splicing Factors/genetics , Epithelial Cells/virology , Epithelial Cells/metabolism , Cell Line , A549 Cells , RNA, Viral/genetics , RNA, Viral/metabolism , Host-Pathogen Interactions , Nerve Tissue Proteins
3.
Viruses ; 16(5)2024 05 15.
Article in English | MEDLINE | ID: mdl-38793664

ABSTRACT

Papillomavirus gene regulation is largely post-transcriptional due to overlapping open reading frames and the use of alternative polyadenylation and alternative splicing to produce the full suite of viral mRNAs. These processes are controlled by a wide range of cellular RNA binding proteins (RPBs), including constitutive splicing factors and cleavage and polyadenylation machinery, but also factors that regulate these processes, for example, SR and hnRNP proteins. Like cellular RNAs, papillomavirus RNAs have been shown to bind many such proteins. The life cycle of papillomaviruses is intimately linked to differentiation of the epithelial tissues the virus infects. For example, viral late mRNAs and proteins are expressed only in the most differentiated epithelial layers to avoid recognition by the host immune response. Papillomavirus genome replication is linked to the DNA damage response and viral chromatin conformation, processes which also link to RNA processing. Challenges with respect to elucidating how RBPs regulate the viral life cycle include consideration of the orchestrated spatial aspect of viral gene expression in an infected epithelium and the epigenetic nature of the viral episomal genome. This review discusses RBPs that control viral gene expression, and how the connectivity of various nuclear processes might contribute to viral mRNA production.


Subject(s)
Gene Expression Regulation, Viral , Papillomaviridae , RNA, Viral , RNA-Binding Proteins , Virus Replication , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Humans , RNA, Viral/genetics , RNA, Viral/metabolism , Papillomaviridae/genetics , Papillomaviridae/physiology , Viral Proteins/metabolism , Viral Proteins/genetics , Papillomavirus Infections/virology , Papillomavirus Infections/metabolism , Genome, Viral , Host-Pathogen Interactions , RNA, Messenger/genetics , RNA, Messenger/metabolism
4.
Viruses ; 16(5)2024 05 20.
Article in English | MEDLINE | ID: mdl-38793693

ABSTRACT

Subgenomic flaviviral RNAs (sfRNAs) are small non-coding products of the incomplete degradation of viral genomic RNA. They accumulate during flaviviral infection and have been associated with many functional roles inside the host cell. Studies so far have demonstrated that sfRNA plays a crucial role in determining West Nile virus (WNV) pathogenicity. However, its modulatory role on neuronal homeostasis has not been studied in depth. In this study, we investigated the mechanism of sfRNA biosynthesis and its importance for WNV replication in neuronal cells. We found that sfRNA1 is functionally redundant for both replication and translation of WNV. However, the concurrent absence of sfRNA1 and sfRNA2 species is detrimental for the survival of the virus. Differential expression analysis on RNA-seq data from WT and ΔsfRNA replicon cell lines revealed transcriptional changes induced by sfRNA and identified a number of putative targets. Overall, it was shown that sfRNA contributes to the viral evasion by suppressing the interferon-mediated antiviral response. An additional differential expression analysis among replicon and control Neuro2A cells also clarified the transcriptional changes that support WNV replication in neuronal cells. Increased levels of translation and oxidative phosphorylation, post-translational modification processes, and activated DNA repair pathways were observed in replicon cell lines, while developmental processes such as axonal growth were deficient.


Subject(s)
Neurons , RNA, Viral , Virus Replication , West Nile virus , West Nile virus/genetics , West Nile virus/physiology , RNA, Viral/genetics , RNA, Viral/metabolism , Neurons/virology , Neurons/metabolism , Animals , Cell Line , Genome, Viral , West Nile Fever/virology , Humans , Mice , Gene Expression Regulation, Viral
5.
Methods Mol Biol ; 2807: 77-91, 2024.
Article in English | MEDLINE | ID: mdl-38743222

ABSTRACT

HIV-1 virions incorporate viral RNA, cellular RNAs, and proteins during the assembly process. Some of these components, such as the viral RNA genome and viral proteins, are essential for viral replication, whereas others, such as host innate immune proteins, can inhibit virus replication. Therefore, analyzing the virion content is an integral part of studying HIV-1 replication. Traditionally, virion contents have been examined using biochemical assays, which can provide information on the presence or absence of the molecule of interest but not its distribution in the virion population. Here, we describe a method, single-virion analysis, that directly examines the presence of molecules of interest in individual viral particles using fluorescence microscopy. Thus, this method can detect both the presence and the distribution of molecules of interest in the virion population. Single-virion analysis was first developed to study HIV-1 RNA genome packaging. In this assay, HIV-1 unspliced RNA is labeled with a fluorescently tagged RNA-binding protein (protein A) and some of the Gag proteins are labeled with a different fluorescent protein (protein B). Using fluorescence microscopy, HIV-1 particles can be identified by the fluorescent protein B signal and the presence of unspliced HIV-1 RNA can be identified by the fluorescent protein A signal. Therefore, the proportions of particles that contain unspliced RNA can be determined by the fraction of Gag particles that also have a colocalized RNA signal. By tagging the molecule of interest with fluorescent proteins, single-virion analysis can be easily adapted to study the incorporation of other viral or host cell molecules into particles. Indeed, this method has been adapted to examine the proportion of HIV-1 particles that contain APOBEC3 proteins and the fraction of particles that contain a modified Gag protein. Therefore, single-virion analysis is a flexible method to study the nucleic acid and protein content of HIV-1 particles.


Subject(s)
HIV-1 , Microscopy, Fluorescence , RNA, Viral , Virion , HIV-1/physiology , HIV-1/genetics , Virion/metabolism , Microscopy, Fluorescence/methods , Humans , RNA, Viral/genetics , RNA, Viral/metabolism , Virus Assembly , Virus Replication , HIV Infections/virology , HIV Infections/metabolism
6.
Methods Mol Biol ; 2807: 195-208, 2024.
Article in English | MEDLINE | ID: mdl-38743230

ABSTRACT

N6-methyladenosine (m6A) modification of RNA is an important area in studying viral replication, cellular responses, and host immunity. HIV-1 RNA contains multiple m6A modifications that regulate viral replication and gene expression. HIV-1 infection of CD4+ T-cells or HIV-1 envelope protein treatment upregulates m6A levels of cellular RNA. Changes in the m6A modification of cellular transcripts in response to HIV-1 infection provide new insights into the mechanisms of posttranscriptional gene regulation in the host cell. To better investigate the functions of m6A modification in HIV-1 infection and innate immune responses, it is helpful to standardize basic protocols. Here, we describe a method for the selective enrichment of m6A-modified RNA from HIV-1-infected primary CD4+ T-cells based on immunoprecipitation. The enriched RNA with m6A modifications can be used in a variety of downstream applications to determine the methylation status of viral or cellular RNA at resolution from transcript level down to single nucleotide.


Subject(s)
Adenosine , CD4-Positive T-Lymphocytes , HIV Infections , HIV-1 , RNA, Viral , HIV-1/genetics , Humans , Adenosine/analogs & derivatives , Adenosine/metabolism , RNA, Viral/genetics , RNA, Viral/metabolism , CD4-Positive T-Lymphocytes/virology , CD4-Positive T-Lymphocytes/metabolism , HIV Infections/virology , Methylation , Virus Replication , Immunoprecipitation/methods
7.
Nat Commun ; 15(1): 4123, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38750014

ABSTRACT

Avian influenza A viruses (IAVs) pose a public health threat, as they are capable of triggering pandemics by crossing species barriers. Replication of avian IAVs in mammalian cells is hindered by species-specific variation in acidic nuclear phosphoprotein 32 (ANP32) proteins, which are essential for viral RNA genome replication. Adaptive mutations enable the IAV RNA polymerase (FluPolA) to surmount this barrier. Here, we present cryo-electron microscopy structures of monomeric and dimeric avian H5N1 FluPolA with human ANP32B. ANP32B interacts with the PA subunit of FluPolA in the monomeric form, at the site used for its docking onto the C-terminal domain of host RNA polymerase II during viral transcription. ANP32B acts as a chaperone, guiding FluPolA towards a ribonucleoprotein-associated FluPolA to form an asymmetric dimer-the replication platform for the viral genome. These findings offer insights into the molecular mechanisms governing IAV genome replication, while enhancing our understanding of the molecular processes underpinning mammalian adaptations in avian-origin FluPolA.


Subject(s)
Cryoelectron Microscopy , Genome, Viral , Influenza A Virus, H5N1 Subtype , Nuclear Proteins , Virus Replication , Humans , Influenza A Virus, H5N1 Subtype/genetics , Virus Replication/genetics , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Nuclear Proteins/chemistry , Animals , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/genetics , RNA-Dependent RNA Polymerase/chemistry , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Viral Proteins/metabolism , Viral Proteins/genetics , Viral Proteins/chemistry , Adaptation, Physiological/genetics , Influenza, Human/virology , RNA, Viral/metabolism , RNA, Viral/genetics , HEK293 Cells , Protein Multimerization , Models, Molecular
8.
Sci Signal ; 17(837): eadi9844, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38771918

ABSTRACT

Oligoadenylate synthetase 3 (OAS3) and ribonuclease L (RNase L) are components of a pathway that combats viral infection in mammals. Upon detection of viral double-stranded RNA (dsRNA), OAS3 synthesizes 2'-5'-oligo(A), which activates the RNase domain of RNase L by promoting the homodimerization and oligomerization of RNase L monomers. Activated RNase L rapidly degrades all cellular mRNAs, shutting off several cellular processes. We sought to understand the molecular mechanisms underlying the rapid activation of RNase L in response to viral infection. Through superresolution microscopy and live-cell imaging, we showed that OAS3 and RNase L concentrated into higher-order cytoplasmic complexes known as dsRNA-induced foci (dRIF) in response to dsRNA or infection with dengue virus, Zika virus, or West Nile virus. The concentration of OAS3 and RNase L at dRIF corresponded with the activation of RNase L-mediated RNA decay. We showed that dimerized/oligomerized RNase L concentrated in a liquid-like shell surrounding a core OAS3-dRIF structure and dynamically exchanged with the cytosol. These data establish that the condensation of dsRNA, OAS3, and RNase L into dRIF is a molecular switch that promotes the rapid activation of RNase L upon detection of dsRNA in mammalian cells.


Subject(s)
2',5'-Oligoadenylate Synthetase , Endoribonucleases , RNA, Double-Stranded , Zika Virus , Endoribonucleases/metabolism , Endoribonucleases/genetics , Endoribonucleases/chemistry , Humans , 2',5'-Oligoadenylate Synthetase/metabolism , 2',5'-Oligoadenylate Synthetase/genetics , 2',5'-Oligoadenylate Synthetase/chemistry , RNA, Double-Stranded/metabolism , RNA, Double-Stranded/chemistry , RNA, Double-Stranded/genetics , Zika Virus/metabolism , Animals , Dengue Virus/metabolism , RNA, Viral/metabolism , RNA, Viral/genetics , RNA Stability , West Nile virus/metabolism , West Nile virus/genetics , Zika Virus Infection/metabolism , Zika Virus Infection/virology , Enzyme Activation , HeLa Cells , HEK293 Cells
9.
Biochemistry ; 63(10): 1287-1296, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38727003

ABSTRACT

The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) frameshift stimulatory element (FSE) is necessary for programmed -1 ribosomal frameshifting (-1 PRF) and optimized viral efficacy. The FSE has an abundance of context-dependent alternate conformations, but two of the structures most crucial to -1 PRF are an attenuator hairpin and a three-stem H-type pseudoknot structure. A crystal structure of the pseudoknot alone features three RNA stems in a helically stacked linear structure, whereas a 6.9 Å cryo-EM structure including the upstream heptameric slippery site resulted in a bend between two stems. Our previous research alluded to an extended upstream multibranch loop that includes both the attenuator hairpin and the slippery site-a conformation not previously modeled. We aim to provide further context to the SARS-CoV-2 FSE via computational and medium resolution cryo-EM approaches, by presenting a 6.1 Å cryo-EM structure featuring a linear pseudoknot structure and a dynamic upstream multibranch loop.


Subject(s)
Cryoelectron Microscopy , Frameshifting, Ribosomal , Nucleic Acid Conformation , RNA, Viral , SARS-CoV-2 , SARS-CoV-2/chemistry , SARS-CoV-2/genetics , RNA, Viral/chemistry , RNA, Viral/genetics , RNA, Viral/metabolism , Humans , Models, Molecular , COVID-19/virology
10.
Front Immunol ; 15: 1380697, 2024.
Article in English | MEDLINE | ID: mdl-38715608

ABSTRACT

The Corona Virus Disease (COVID-19), caused by the Severe Acute Respiratory Syndrome Coronavirus-2 (SARS-CoV-2), has quickly spread worldwide and resulted in significant morbidity and mortality. Although most infections are mild, some patients can also develop severe and fatal myocarditis. In eukaryotic RNAs, 5-methylcytosine (m5C) is a common kind of post-transcriptional modification, which is involved in regulating various biological processes (such as RNA export, translation, and stability maintenance). With the rapid development of m5C modification detection technology, studies related to viral m5C modification are ever-increasing. These studies have revealed that m5C modification plays an important role in various stages of viral replication, including transcription and translation. According to recent studies, m5C methylation modification can regulate SARS-CoV-2 infection by modulating innate immune signaling pathways. However, the specific role of m5C modification in SARS-CoV-2-induced myocarditis remains unclear. Therefore, this review aims to provide insights into the molecular mechanisms of m5C methylation in SARS-CoV-2 infection. Moreover, the regulatory role of NSUN2 in viral infection and host innate immune response was also highlighted. This review may provide new directions for developing therapeutic strategies for SARS-CoV-2-associated myocarditis.


Subject(s)
COVID-19 , Myocarditis , SARS-CoV-2 , Myocarditis/virology , Myocarditis/immunology , Myocarditis/therapy , Myocarditis/genetics , Humans , COVID-19/immunology , COVID-19/genetics , COVID-19/therapy , SARS-CoV-2/physiology , Methylation , 5-Methylcytosine/metabolism , Immunity, Innate , COVID-19 Drug Treatment , Animals , RNA, Viral/genetics , RNA, Viral/metabolism , RNA Processing, Post-Transcriptional
11.
Commun Biol ; 7(1): 557, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730276

ABSTRACT

The high abundance of most viruses in infected host cells benefits their structural characterization. However, endogenous viruses are present in low copy numbers and are therefore challenging to investigate. Here, we retrieve cell extracts enriched with an endogenous virus, the yeast L-A virus. The determined cryo-EM structure discloses capsid-stabilizing cation-π stacking, widespread across viruses and within the Totiviridae, and an interplay of non-covalent interactions from ten distinct capsomere interfaces. The capsid-embedded mRNA decapping active site trench is supported by a constricting movement of two flexible opposite-facing loops. tRNA-loaded polysomes and other biomacromolecules, presumably mRNA, are found in virus proximity within the cell extract. Mature viruses participate in larger viral communities resembling their rare in-cell equivalents in terms of size, composition, and inter-virus distances. Our results collectively describe a 3D-architecture of a viral milieu, opening the door to cell-extract-based high-resolution structural virology.


Subject(s)
Cryoelectron Microscopy , Capsid/metabolism , Capsid/ultrastructure , Capsid/chemistry , Cell Extracts , Saccharomyces cerevisiae/genetics , RNA, Viral/metabolism , RNA, Viral/genetics , RNA, Messenger/metabolism , RNA, Messenger/genetics
12.
Anal Chem ; 96(19): 7479-7486, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38689560

ABSTRACT

In the pathogenesis of microglia, brain immune cells promote nitrergic stress by overproducing nitric oxide (NO), leading to neuroinflammation. Furthermore, NO has been linked to COVID-19 progression, which has caused significant morbidity and mortality. SARS-CoV-2 infection activates inflammation by releasing excess NO and causing cell death in human microglial clone 3 (HMC3). In addition, NO regulates lysosomal functions and complex machinery to neutralize pathogens through phagocytosis. Therefore, developing lysosome-specific NO probes to monitor phagocytosis in microglia during the COVID-19 infection would be a significant study. Herein, a unique synthetic strategy was adopted to develop a NO selective fluorescent probe, PDM-NO, which can discriminate activated microglia from their resting state. The nonfluorescent PDM-NO exhibits a turn-on response toward NO only at lysosomal pH (4.5-5.5). Quantum chemical calculations (DFT/TD-DFT/PCM) and photophysical study revealed that the photoinduced electron transfer (PET) process is pivotal in tuning optical properties. PDM-NO demonstrated good biocompatibility and lysosomal specificity in activated HMC3 cells. Moreover, it can effectively map the dynamics of lysosomal NO against SARS-CoV-2 RNA-induced neuroinflammation in HMC3. Thus, PDM-NO is a potential fluorescent marker for detecting RNA virus infection and monitoring phagocytosis in HMC3.


Subject(s)
COVID-19 , Fluorescent Dyes , Lysosomes , Microglia , Nitric Oxide , Phagocytosis , SARS-CoV-2 , Microglia/virology , Microglia/metabolism , SARS-CoV-2/isolation & purification , Humans , Lysosomes/metabolism , Nitric Oxide/metabolism , Nitric Oxide/analysis , COVID-19/virology , COVID-19/diagnosis , COVID-19/metabolism , Fluorescent Dyes/chemistry , RNA, Viral/analysis , RNA, Viral/metabolism , Neuroinflammatory Diseases , Cell Line , Phenotype
13.
Nat Commun ; 15(1): 4198, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760344

ABSTRACT

During HIV infection, specific RNA-protein interaction between the Rev response element (RRE) and viral Rev protein is required for nuclear export of intron-containing viral mRNA transcripts. Rev initially binds the high-affinity site in stem-loop II, which promotes oligomerization of additional Rev proteins on RRE. Here, we present the crystal structure of RRE stem-loop II in distinct closed and open conformations. The high-affinity Rev-binding site is located within the three-way junction rather than the predicted stem IIB. The closed and open conformers differ in their non-canonical interactions within the three-way junction, and only the open conformation has the widened major groove conducive to initial Rev interaction. Rev binding assays show that RRE stem-loop II has high- and low-affinity binding sites, each of which binds a Rev dimer. We propose a binding model, wherein Rev-binding sites on RRE are sequentially created through structural rearrangements induced by Rev-RRE interactions.


Subject(s)
HIV-1 , Nucleic Acid Conformation , RNA, Viral , rev Gene Products, Human Immunodeficiency Virus , HIV-1/metabolism , HIV-1/genetics , Binding Sites , rev Gene Products, Human Immunodeficiency Virus/metabolism , rev Gene Products, Human Immunodeficiency Virus/chemistry , rev Gene Products, Human Immunodeficiency Virus/genetics , RNA, Viral/metabolism , RNA, Viral/chemistry , RNA, Viral/genetics , Crystallography, X-Ray , Protein Binding , Models, Molecular , Humans , Response Elements
14.
Nat Commun ; 15(1): 4189, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760379

ABSTRACT

The viral polymerase complex, comprising the large protein (L) and phosphoprotein (P), is crucial for both genome replication and transcription in non-segmented negative-strand RNA viruses (nsNSVs), while structures corresponding to these activities remain obscure. Here, we resolved two L-P complex conformations from the mumps virus (MuV), a typical member of nsNSVs, via cryogenic-electron microscopy. One conformation presents all five domains of L forming a continuous RNA tunnel to the methyltransferase domain (MTase), preferably as a transcription state. The other conformation has the appendage averaged out, which is inaccessible to MTase. In both conformations, parallel P tetramers are revealed around MuV L, which, together with structures of other nsNSVs, demonstrates the diverse origins of the L-binding X domain of P. Our study links varying structures of nsNSV polymerase complexes with genome replication and transcription and points to a sliding model for polymerase complexes to advance along the RNA templates.


Subject(s)
Cryoelectron Microscopy , Mumps virus , Viral Proteins , Mumps virus/genetics , Mumps virus/ultrastructure , Mumps virus/metabolism , Viral Proteins/metabolism , Viral Proteins/ultrastructure , Viral Proteins/chemistry , Viral Proteins/genetics , Models, Molecular , RNA, Viral/metabolism , RNA, Viral/ultrastructure , RNA, Viral/genetics , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/ultrastructure , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/genetics , Protein Domains , Phosphoproteins/metabolism , Phosphoproteins/chemistry , Phosphoproteins/ultrastructure , RNA-Dependent RNA Polymerase/metabolism , RNA-Dependent RNA Polymerase/ultrastructure , RNA-Dependent RNA Polymerase/chemistry , RNA-Dependent RNA Polymerase/genetics , Virus Replication , Transcription, Genetic , Protein Conformation
15.
PLoS Pathog ; 20(5): e1012125, 2024 May.
Article in English | MEDLINE | ID: mdl-38696536

ABSTRACT

Major 5'-terminally deleted (5'TD) RNA forms of group-B coxsackievirus (CVB-5'TD) has been associated with myocarditis in both mice and humans. Although it is known that interferon-ß (IFN-ß) signaling is critical for an efficient innate immune response against CVB-induced myocarditis, the link between CVB-5'TD RNA forms and type I IFN signaling in cardiomyocytes remains to be explored. In a mouse model of CVB3/28-induced myocarditis, major early-emerging forms of CVB-5'TD RNA have been characterized as replicative viral populations that impair IFN-ß production in the heart. Synthetic CVB3/28 RNA forms mimicking each of these major 5'TD virus populations were transfected in mice and have been shown to modulate innate immune responses in the heart and to induce myocarditis in mice. Remarkably, transfection of synthetic viral RNA with deletions in the secondary structures of the 5'-terminal CVB3 RNA domain I, modifying stem-loops "b", "c" or "d", were found to impair IFN-ß production in human cardiomyocytes. In addition, the activation of innate immune response by Poly(I:C), was found to restore IFN-ß production and to reduce the burden of CVB-5'TD RNA-forms in cardiac tissues, thereby reducing the mortality rate of infected mice. Overall, our results indicate that major early-emerging CVB3 populations deleted in the domain I of genomic RNA, in the 5' noncoding region, modulate the activation of the type I IFN pathway in cardiomyocytes and induce myocarditis in mice. These findings shed new light on the role of replicative CVB-5'TD RNA forms as key pathophysiological factors in CVB-induced human myocarditis.


Subject(s)
Coxsackievirus Infections , Enterovirus B, Human , Interferon Type I , Myocarditis , Myocytes, Cardiac , RNA, Viral , Myocarditis/virology , Myocarditis/immunology , Myocarditis/genetics , Animals , Myocytes, Cardiac/virology , Myocytes, Cardiac/metabolism , Mice , Enterovirus B, Human/immunology , Coxsackievirus Infections/immunology , Coxsackievirus Infections/virology , Coxsackievirus Infections/genetics , Interferon Type I/metabolism , RNA, Viral/genetics , RNA, Viral/metabolism , Humans , Immunity, Innate , Signal Transduction , Interferon-beta/metabolism , Interferon-beta/genetics , Interferon-beta/immunology , Male , 5' Untranslated Regions
16.
Nat Commun ; 15(1): 4620, 2024 May 30.
Article in English | MEDLINE | ID: mdl-38816392

ABSTRACT

Influenza viruses and thogotoviruses account for most recognized orthomyxoviruses. Thogotoviruses, exemplified by Thogoto virus (THOV), are capable of infecting humans using ticks as vectors. THOV transcribes mRNA without the extraneous 5' end sequences derived from cap-snatching in influenza virus mRNA. Here, we report cryo-EM structures to characterize THOV polymerase RNA synthesis initiation and elongation. The structures demonstrate that THOV RNA transcription and replication are able to start with short dinucleotide primers and that the polymerase cap-snatching machinery is likely non-functional. Triggered by RNA synthesis, asymmetric THOV polymerase dimers can form without the involvement of host factors. We confirm that, distinctive from influenza viruses, THOV-polymerase RNA synthesis is weakly dependent of the host factors ANP32A/B/E in human cells. This study demonstrates varied mechanisms in RNA synthesis and host factor utilization among orthomyxoviruses, providing insights into the mechanisms behind thogotoviruses' broad-infectivity range.


Subject(s)
Cryoelectron Microscopy , RNA, Viral , Thogotovirus , Transcription, Genetic , Virus Replication , Humans , Thogotovirus/genetics , Thogotovirus/metabolism , Thogotovirus/ultrastructure , RNA, Viral/metabolism , RNA, Viral/genetics , Virus Replication/genetics , RNA, Messenger/metabolism , RNA, Messenger/genetics , Viral Proteins/metabolism , Viral Proteins/genetics , Viral Proteins/chemistry , Viral Proteins/ultrastructure
17.
Biochem Biophys Res Commun ; 719: 150103, 2024 Jul 30.
Article in English | MEDLINE | ID: mdl-38761636

ABSTRACT

The RNA-binding protein PKR serves as a crucial antiviral innate immune factor that globally suppresses translation by sensing viral double-stranded RNA (dsRNA) and by phosphorylating the translation initiation factor eIF2α. Recent findings have unveiled that single-stranded RNAs (ssRNAs), including in vitro transcribed (IVT) mRNA, can also bind to and activate PKR. However, the precise mechanism underlying PKR activation by ssRNAs, remains incompletely understood. Here, we developed a NanoLuc Binary Technology (NanoBiT)-based in vitro PKR dimerization assay to assess the impact of ssRNAs on PKR dimerization. Our findings demonstrate that, akin to double-stranded polyinosinic:polycytidylic acid (polyIC), an encephalomyocarditis virus (EMCV) RNA, as well as NanoLuc luciferase (Nluc) mRNA, can induce PKR dimerization. Conversely, homopolymeric RNA lacking secondary structure fails to promote PKR dimerization, underscoring the significance of secondary structure in this process. Furthermore, adenovirus VA RNA 1, another ssRNA, impedes PKR dimerization by competing with Nluc mRNA. Additionally, we observed structured ssRNAs capable of forming G-quadruplexes induce PKR dimerization. Collectively, our results indicate that ssRNAs have the ability to either induce or inhibit PKR dimerization, thus representing potential targets for the development of antiviral and anti-inflammatory agents.


Subject(s)
Encephalomyocarditis virus , Protein Multimerization , RNA, Double-Stranded , RNA, Viral , eIF-2 Kinase , eIF-2 Kinase/metabolism , eIF-2 Kinase/chemistry , Humans , RNA, Viral/metabolism , RNA, Viral/genetics , RNA, Viral/chemistry , Encephalomyocarditis virus/genetics , RNA, Double-Stranded/metabolism , RNA, Double-Stranded/chemistry , Poly I-C/pharmacology , Nucleic Acid Conformation
18.
RNA Biol ; 21(1): 14-30, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38797925

ABSTRACT

As positive-sense RNA viruses, the genomes of flaviviruses serve as the template for all stages of the viral life cycle, including translation, replication, and infectious particle production. Yet, they encode just 10 proteins, suggesting that the structure and dynamics of the viral RNA itself helps shepherd the viral genome through these stages. Herein, we highlight advances in our understanding of flavivirus RNA structural elements through the lens of their impact on the viral life cycle. We highlight how RNA structures impact translation, the switch from translation to replication, negative- and positive-strand RNA synthesis, and virion assembly. Consequently, we describe three major themes regarding the roles of RNA structure in flavivirus infections: 1) providing a layer of specificity; 2) increasing the functional capacity; and 3) providing a mechanism to support genome compaction. While the interactions described herein are specific to flaviviruses, these themes appear to extend more broadly across RNA viruses.


Subject(s)
Flavivirus , Genome, Viral , Nucleic Acid Conformation , RNA, Viral , Virus Replication , Flavivirus/genetics , Flavivirus/physiology , RNA, Viral/metabolism , RNA, Viral/chemistry , RNA, Viral/genetics , Humans , Flavivirus Infections/virology , Virus Assembly , Animals , Protein Biosynthesis
19.
Cell ; 187(11): 2735-2745.e12, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38723628

ABSTRACT

Hepatitis B virus (HBV) is a small double-stranded DNA virus that chronically infects 296 million people. Over half of its compact genome encodes proteins in two overlapping reading frames, and during evolution, multiple selective pressures can act on shared nucleotides. This study combines an RNA-based HBV cell culture system with deep mutational scanning (DMS) to uncouple cis- and trans-acting sequence requirements in the HBV genome. The results support a leaky ribosome scanning model for polymerase translation, provide a fitness map of the HBV polymerase at single-nucleotide resolution, and identify conserved prolines adjacent to the HBV polymerase termination codon that stall ribosomes. Further experiments indicated that stalled ribosomes tether the nascent polymerase to its template RNA, ensuring cis-preferential RNA packaging and reverse transcription of the HBV genome.


Subject(s)
Hepatitis B virus , Reverse Transcription , Humans , Genome, Viral/genetics , Hepatitis B virus/genetics , Mutation , Ribosomes/metabolism , RNA, Viral/genetics , RNA, Viral/metabolism , Cell Line
20.
PLoS Pathog ; 20(5): e1012231, 2024 May.
Article in English | MEDLINE | ID: mdl-38753876

ABSTRACT

Utilisation of RNA-binding proteins (RBPs) is an important aspect of post-transcriptional regulation of viral RNA. Viruses such as influenza A viruses (IAV) interact with RBPs to regulate processes including splicing, nuclear export and trafficking, while also encoding RBPs within their genomes, such as NP and NS1. But with almost 1000 RBPs encoded within the human genome it is still unclear what role, if any, many of these proteins play during viral replication. Using the RNA interactome capture (RIC) technique, we isolated RBPs from IAV infected cells to unravel the RBPome of mRNAs from IAV infected human cells. This led to the identification of one particular RBP, MKRN2, that associates with and positively regulates IAV mRNA. Through further validation, we determined that MKRN2 is involved in the nuclear-cytoplasmic trafficking of IAV mRNA potentially through an association with the RNA export mediator GLE1. In the absence of MKRN2, IAV mRNAs accumulate in the nucleus of infected cells, which may lead to their degradation by the nuclear RNA exosome complex. MKRN2, therefore, appears to be required for the efficient nuclear export of IAV mRNAs in human cells.


Subject(s)
Influenza A virus , Influenza, Human , RNA, Messenger , RNA, Viral , RNA-Binding Proteins , Humans , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , RNA, Viral/metabolism , RNA, Viral/genetics , RNA, Messenger/metabolism , RNA, Messenger/genetics , Influenza, Human/metabolism , Influenza, Human/virology , Influenza, Human/genetics , Influenza A virus/genetics , Virus Replication , Active Transport, Cell Nucleus , RNA Transport , Animals , Cell Nucleus/metabolism , Cell Nucleus/virology
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